Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
721
datasets available to search
ShareScore release 0.9.0
Dataset results
721 results for “ABI”
FIGURE 2 in Nomenclatural notes on the Mediterranean firs (Abies, Pinaceae)
FIGURE 2. Lectotype of Abies pinsapo Boissier, G (barcode G00047732 "le lectotype est le rameau de droite sur la feuille munie de l'étiquette a" [the lectotype is the right branch on the sheet with the label a]). Photography courtesy of Herbarium G; reproduced with permission.
FIGURE 7 in Nomenclatural notes on the Mediterranean firs (Abies, Pinaceae)
FIGURE 7. Lectotype of Abies numidica de Lannoy ex Carrière, P (barcode P00507232). Photography courtesy of Herbarium P; reproduced with permission.
FIGURE 6 in Nomenclatural notes on the Mediterranean firs (Abies, Pinaceae)
FIGURE 6. Neotype of Abies tazaotana Côzar ex Huguet del Villar, SEV (number SEV 277703). Photography courtesy of Herbarium SEV; reproduced with permission.
Supplemental GOES-ABI videos for sensors submission
<p>Enhanced-color GOES-ABI image sequences to accompany the manuscript submission:</p> <p>"Observing the ocean submesoscale with enhanced-color GOES-ABI visible band data" 2019 to sensors, MDPI</p> <p>Authors: Jolliff, J.K., M.D. Lewis, S. Ladner, R. Crout</p> <p> </p>
FIGURE 4 in Abies jaliscana (Pinaceae): A new combination in section Grandis and a key to the species of Abies in western Mexico
FIGURE 4. Abies jaliscana immature seed cone (female receptive strobilus at anthesis). Photograph by Mauricio Mantilla Blandón.
FIGURE 3 in Abies jaliscana (Pinaceae): A new combination in section Grandis and a key to the species of Abies in western Mexico
FIGURE 3. Mature seed cones of Abies jaliscana, A. flinckii and A. religiosa subsp. colimensis (right to left), at the same scale. Drawing by David Jimeno-Sevilla.
FIGURE 1 in Abies jaliscana (Pinaceae): A new combination in section Grandis and a key to the species of Abies in western Mexico
FIGURE 1. Abies jaliscana. Top right: ovuliferous scale, showing the bract length; the important point is that bract may be exserted in mature cones. Center right: ovuliferous scales, female pollen-receptive strobilus. Center left: branchlet bearing mature seed cones. Drawing by David Jimeno-Sevilla.
Figure 6 in Designation of Thouarella abies Broch, 1965 as the type species of the subgenus Fannyella (Scyphogorgia) Cairns and Bayer, 2009, and description of a new genus for Stenella (Dasystenella) liouvillei Gravier, 1913 (Octocorallia: Primnoidae)
Figure 6. Scopaegorgia liouvillei comb. nov., holotype (MNHN Oct.0000–0233): (A) body scales; (B) coenenchymal scales.
Figure 5 in Designation of Thouarella abies Broch, 1965 as the type species of the subgenus Fannyella (Scyphogorgia) Cairns and Bayer, 2009, and description of a new genus for Stenella (Dasystenella) liouvillei Gravier, 1913 (Octocorallia: Primnoidae)
Figure 5. Scopaegorgia liouvillei comb. nov., holotype (MNHN Oct.0000–0233): (A) opercular scales; (B) marginal scales.
Figure 4 in Designation of Thouarella abies Broch, 1965 as the type species of the subgenus Fannyella (Scyphogorgia) Cairns and Bayer, 2009, and description of a new genus for Stenella (Dasystenella) liouvillei Gravier, 1913 (Octocorallia: Primnoidae)
Figure 4. Scopaegorgia liouvillei comb. nov., holotype (MNHN Oct.0000–0233). Whorl on abaxial view, stereo pair.
Figure 8 in Designation of Thouarella abies Broch, 1965 as the type species of the subgenus Fannyella (Scyphogorgia) Cairns and Bayer, 2009, and description of a new genus for Stenella (Dasystenella) liouvillei Gravier, 1913 (Octocorallia: Primnoidae)
Figure 8. Fannyella abies, holotype (B970): (A) whorl of polyps, stereo pair; (B) whorl on oral view, stereo pair; (C) polyp on outer-lateral view; (D) polyp on adaxial view.
Figure 11 in Designation of Thouarella abies Broch, 1965 as the type species of the subgenus Fannyella (Scyphogorgia) Cairns and Bayer, 2009, and description of a new genus for Stenella (Dasystenella) liouvillei Gravier, 1913 (Octocorallia: Primnoidae)
Figure 11. Bottlebrush colony shape variability in Fannyella abies: (A) CRO-0049, preserved material; (B) MNA 2463, living material; (C) CRO-0048, living material.
Figure 7 in Designation of Thouarella abies Broch, 1965 as the type species of the subgenus Fannyella (Scyphogorgia) Cairns and Bayer, 2009, and description of a new genus for Stenella (Dasystenella) liouvillei Gravier, 1913 (Octocorallia: Primnoidae)
Figure 7. Fannyella abies, holotype (B970): (A) detail of a brachlet; (B) whole colony. Photo: Åse Wilhelmsen NHM, Oslo.
Figure 1 in Designation of Thouarella abies Broch, 1965 as the type species of the subgenus Fannyella (Scyphogorgia) Cairns and Bayer, 2009, and description of a new genus for Stenella (Dasystenella) liouvillei Gravier, 1913 (Octocorallia: Primnoidae)
Figure 1. Distribution of Primnoid species examined in this paper: circle, Scopaegorgia liouvillei comb. nov.; square, Fannyella abies. Empty symbols represent the respective holotypes.
Figure 2 in Designation of Thouarella abies Broch, 1965 as the type species of the subgenus Fannyella (Scyphogorgia) Cairns and Bayer, 2009, and description of a new genus for Stenella (Dasystenella) liouvillei Gravier, 1913 (Octocorallia: Primnoidae)
Figure 2. Scopaegorgia liouvillei comb. nov., holotype (MNHN Oct.0000–0233): (A) whole colony; (B) detail of a whorl. Photo: Aude Andouche, MNHN, Paris.
FIGURE 1 in Pestalotiopsis abietis sp. nov. from Abies fargesii in China
FIGURE 1—Maximum parsimony phylogeny of Pestalotiopsis species obtained from the combined ITS, TEF and TUB matrix. MP, ML and BI bootstrap support values are shown in order at the nodes. Scale bar = 40 nucleotide substitutions. The new sequences resulting from the current study are in green.
FIGURE 3 in Pestalotiopsis abietis sp. nov. from Abies fargesii in China
FIGURE 3—Phylogram of ITS, TEF and TUB regions based on MP and ML analysis. Values above the branches indicate maximum parsimony bootstrap (MP BP ≥ 50 %) and maximum likelihood bootstrap (ML BP ≥ 50 %). Scale bar = 60 nucleotide substitutions.
FIGURE 2 in Pestalotiopsis abietis sp. nov. from Abies fargesii in China
FIGURE 2—Pestalotiopsis abietis from Abies fargesii (CFCC 53011). A, B Conidiomata. C Conidiophores. D–F Conidia. Scale Bars: A = 1 mm, B = 0.5 mm, C–F = 10 μm.
Complete organelle genomes of Korean fir, Abies koreana and phylogenomics of the gymnosperm genus Abies using nuclear and cytoplasmic DNA sequence data
<span>Background</span> <p><em><span>Abies koreana</span></em><span> E. H. Wilson is an endangered evergreen coniferous tree that is native to high altitudes in South Korea and susceptible to the effects of climate change. Hybridization and reticulate evolution have been reported in the genus; therefore, multigene datasets from nuclear and cytoplasmic genomes are needed to better understand its evolutionary history.</span></p> <span>Results</span> <p><span>Using Illumina NovaSeq6000 and Oxford Nanopore Technologies (ONT) PromethION platforms, we generated complete mitochondrial (1,174,803 bp) and plastid (121,341 bp) genomes from <em>A. koreana</em>. The mitochondrial genome is highly dynamic, transitioning from cis- to trans-splicing and breaking the conserved gene clusters. In the case of the plastome, the ONT reads revealed two structural conformations of <em>A. koreana</em>. The short inverted repeats (1,186 bp) of the <em>A. koreana</em> plastome are associated with the different structural types. Transcriptomic sequencing revealed 1,356 sites of C-to-U RNA editing in the 41 mitochondrial genes. Using <em>A. koreana</em> as a reference, we additionally produced nuclear ribosomal DNA and organelle genomic sequences from eight Abies species and generated multiple datasets for maximum likelihood and network analyses. Three sections (<em>Balsamea</em>, <em>Momi</em>, and <em>Pseudopicea</em>) were well grouped in the nuclear phylogeny, but the phylogenomic relationships showed conflicting signals in the mitochondrial and plastid genomes, indicating a complicated evolutionary history that may have included introgressive hybridization.</span></p> <span>Conclusions</span> <p><span>These results illustrate that phylogenomic analyses based on the sequences from differently inherited organelle genomes resulted in conflicting trees. Organellar capture, organellar genome recombination, and incomplete lineage sorting in an ancestral heteroplasmic individual can contribute to phylogenomic discordance. We provide strong support for the relationships within <em>Abies</em> and new insights into the phylogenomic complexity of this genus.</span></p>
Fig. 2 in Glycosylated constituents isolated from the trunk of Abies holophylla and their anti-inflammatory and neurotrophic activity
Fig. 2. Key COSY (blue bold), HMBC (red arrow), and NOESY (green dashed arrow) correlations of previously undescribed compounds 1–11. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.